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User Identification from Gait Analysis Using Multi-Modal Sensors in Smart Insole

机译:使用智能鞋垫中的多模态传感器的步态分析中的用户识别

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Recent studies indicate that individuals can be identified by their gait pattern. A number of sensors including vision, acceleration, and pressure have been used to capture humans’ gait patterns, and a number of methods have been developed to recognize individuals from their gait pattern data. This study proposes a novel method of identifying individuals using null-space linear discriminant analysis on humans’ gait pattern data. The gait pattern data consists of time series pressure and acceleration data measured from multi-modal sensors in a smart insole used while walking. We compare the identification accuracies from three sensing modalities, which are acceleration, pressure, and both in combination. Experimental results show that the proposed multi-modal features identify 14 participants with high accuracy over 95% from their gait pattern data of walking.
机译:最近的研究表明,个人可以通过它们的步态模式来识别。已经使用了许多传感器,包括视觉,加速和压力,用于捕获人类的步态模式,并且已经开发了许多方法来识别来自他们的步态模式数据的个人。本研究提出了一种使用对人类步态数据数据的空空间线性判别分析来识别个体的新方法。步态模式数据包括时间序列压力和从步行时使用的智能鞋垫中的多模态传感器测量的加速度数据。我们将识别精度与三种感测模式进行比较,这些尺寸是加速,压力和两者组合。实验结果表明,所提出的多模态特征可识别高精度的14名参与者,从步行的步态数据的步态数据提供95%。

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